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February 6, 2026npj Computational Materials0 citationsOpen Access

Vacancy-controlled superconductivity in rock-salt carbides: towards predictive modelling of real-world superconductors

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SCSimone Di CataldoWCWilliam CursioLBLilia Boeri

Key Points

  • To investigate the superconducting properties of rock-salt transition-metal carbides and develop predictive models.
  • Combined first-principles electron-phonon calculations with structure prediction.
  • Analyzed superconducting trends across the transition-metal series.
  • Identified carbon-vacant structures through unbiased structure prediction.
  • Found a correlation between defect structures and superconducting properties.
  • Demonstrated that carbon vacancies enable reconciliation of theoretical and experimental data.
  • Established a framework for modeling non-equilibrium synthesized superconductors.

Abstract

Abstract We critically reexamine the superconducting properties of rock-salt transition-metal carbides (TMCs), often regarded as textbook conventional superconductors, combining first-principles electron-phonon calculations with variable-composition evolutionary structure prediction. Studying superconducting trends across the entire transition-metal series, we find that, when the rock-salt stoichiometric phase is dynamically or thermodynamically unstable, carbon-vacant structures identified through unbiased structure prediction permit to reconcile theoretical calculations with experimental trends. Our integrated use of structure prediction and electron-phonon calculations defines a general framework for realistic modeling of superconductors shaped by non-equilibrium synthesis routes and defect tolerance.

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Cite This Study

Cataldo et al. (2026) studied this question.

synapsesocial.com/papers/698585ea8f7c464f23009bcehttps://doi.org/10.1038/s41524-025-01943-5
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